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Amar, L.

Publications and source records attributed to Amar, L..

2 recordsLinked to original sources

Regulation of Aldosterone Secretion by Substance P and the NK1 Receptor in Aldosterone-Producing Adenomas

Aldosterone-producing adenoma (APA) is a major cause of primary aldosteronism (PA), the most frequent form of secondary hypertension. Although somatic mutations in ion channels within APA have been shown to activate Ca2+ signaling and drive aldosterone production, the pathophysiology of PA remains partially understood. Substance P (SP), encoded by the TAC1 gene, is a neuropeptide of the tachykinin family, known for its role in stimulating aldosterone production through activation of the neurokinin 1 receptor (NK1R) in the human adrenal cortex. The aim of our work was to investigate the presence of SP nerve fibers and the NK1 receptor in a large series of APA to assess the potential role of this neuropeptide in the pathophysiology of PA. We analyzed 56 APA tissues using molecular, immunohistochemical, and functional techniques to assess the expression of SP and NK1R and examine the action of SP on aldosterone secretion. SP-positive nerve fibers were detected in 90% of the APA tissues, appearing localized both within and around the adenomas, which also showed strong NK1R expression. Functional studies revealed that SP stimulated aldosterone secretion in 6 of 10 APA cultures. The NK1R antagonist aprepitant inhibited SP-induced aldosterone secretion in 3 of the 4 SP-responsive APA cultures on which the antagonist was tested. Additionally, in perifused APA explants, SP influenced aldosterone pulsatility, resulting in enhanced mineralocorticoid secretion. These findings suggest that the SP-NK1R signaling pathway may contribute to APA pathophysiology and represent a novel potential target for the pharmacological treatment of PA in a subset of patients.

physiology↗

SWI/SNF chromatin remodeler complex within the reward pathway is required for behavioral adaptations to stress

Stress exposure is a cardinal risk factor for most psychiatric diseases. Preclinical and clinical studies point to changes in gene expression involving epigenetic modifications within mesocorticolimbic brain circuits. Brahma (BRM) and Brahma-Related-Gene-1 (BRG1) are ATPase subunits of the SWI/SNF complexes involved in chromatin remodeling, a process essential to enduring plastic changes in gene expression. Here, we show that repeated social defeat induces changes in BRG1 nuclear distribution. The inactivation of the Brg1/Smarca4 gene within dopamine-innervated regions or the constitutive inactivation of the Brm/Smarca2 gene leads to resilience to repeated social defeat and decreases the behavioral responses to cocaine without impacting midbrain dopamine neurons activity. Within striatal medium spiny neurons Brg1 gene inactivation reduces the expression of stress- and cocaine-induced immediate early genes, increases levels of heterochromatin and at a global scale decreases chromatin accessibility. Altogether these data demonstrate the pivotal function of SWI/SNF complexes in behavioral and transcriptional adaptations to salient environmental challenges.

neuroscience↗